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An efficient implementation of semiempirical quantum-chemical orthogonalization-corrected methods for excited-state dynamics

机译:兴奋状态动态的半透明量子化学正交化校正方法的有效实施

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We present an efficient implementation of configuration interaction with single excitations (CIS) for semiempirical orthogonalization-corrected OMx methods and standard modified neglect of diatomic overlap (MNDO)-type methods for the computation of vertical excitation energies as well as analytical gradients and nonadiabatic couplings. This CIS implementation is combined with Tully's fewest switches algorithm to enable surface hopping simulations of excited-state nonadiabatic dynamics. We introduce an accurate and efficient expression for the semiempirical evaluation of nonadiabatic couplings, which offers a significant speedup for medium-size molecules and is suitable for use in long nonadiabatic dynamics runs. As a pilot application, the semiempirical CIS implementation is employed to investigate ultrafast energy transfer processes in a phenylene ethynylene dendrimer model. (C) 2018 Author(s). All article content, except where otherwise noted, is licensed under a Creative Commons Attribution (CC BY) license
机译:我们在半透明正交化校正的OMX方法和标准修改忽略的二种激励校正OMX方法和标准修改忽略用于计算垂直激励能量以及分析梯度和非等压联轴器的标准修改忽略的配置相互作用的配置交互。该CIS实现与Tully最少的开关算法相结合,以实现兴奋状态的非等离动力学的表面跳跃模拟。我们对非等级偶联的半透镜评估进行了准确而有效的表达,其为中尺寸分子提供了显着的加速,并且适用于长期的非双产动力学运行。作为试验应用,使用半血型CIS实现来研究亚苯基乙炔基树突模型中的超速率能量转移方法。 (c)2018年作者。除非另有说明,否则所有文章内容都在创造性的公共归因(CC By)许可下许可

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